TY - THES A1 - Mielich-Süß, Benjamin T1 - Elucidating structural and functional aspects of prokaryotic membrane microdomains T1 - Aufklärung struktureller und funktioneller Aspekte von prokaryotischen Membranmikrodomänen N2 - Bacterial functional membrane microdomains (FMMs) are membrane platforms that resemble lipid rafts of eukaryotic cells in certain functional and structural aspects. Lipid rafts are nanometer-sized, dynamic clusters of proteins and lipids in eukaryotic cell membranes that serve as signaling hubs and assembling platforms. Yet, studying these structures can often be hampered by the complexity of a eukaryotic cell. Thus, the analogous structures of prokaryotes are an attractive model to study molecular traits of this type of membrane organization. Similar to eukaryotic lipid rafts, the bacterial FMMs are comprised of polyisoprenoid lipids, scaffold proteins and a distinct set of membrane proteins, involved in signaling or secretion. Investigating bacterial FMMs not only contributes to the understanding of the physiological importance of FMMs in bacteria, but also helps to elucidate general principles of rafts beyond prokaryotes. In this work, a bacterial model organism was used to investigate effects of synthetic overproduction of the raft scaffolding proteins on bacterial physiology. This overexpression causes an unusual stabilization of the FMM-harbored protease FtsH and therefore the proteolytic targets of FtsH are not correctly regulated. Developmental defects and aberrances in shape are the consequence, which in turn negatively affects cell physiology. These findings may be adapted to better understand lipid raft processes in humans, where flotillin upregulation is detected along with development of neurological diseases. Moreover, it was aimed at understanding the FMM-proteome of the human pathogen Staphylococcus aureus. An in-depth quantitative mass-spectrometry analysis reveals adaption of the protein cargo during different conditions, while maintaining a distinct set of core FMM proteins. As a case study, the assembly of the type VII secretion system was shown to be dependent on FMM integrity and more specifically on the activity of the FMM-scaffold flotillin. This secretion system is important for the virulence of this pathogen and its secretion efficiency can be targeted by small molecules that inhibit flotillin activity. This opens new venues for non-conventional antimicrobial compounds to treat staphylococcal infections. N2 - Funktionelle Membranmikrodomänen (FMMs) in Bakterien sind Membranplattformen, die in strukturellen und funktionellen Aspekten mit Lipid Rafts eukaryotischer Zellen vergleichbar sind. Diese Nanometer-großen, dynamischen Protein-/Lipid-Cluster in der eukaryotischen Zellmembran dienen als Signalzentrum und Assemblierungsplattformen. Allerdings ist die Arbeit an diesen Strukturen durch die Komplexität der eukaryotischen Zellen oft eingeschränkt. Daher sind prokayotische Zellen attraktive Modellsysteme, um molekulare Eigenschaften dieser Art von Membranorganisation zu untersuchen. Ähnlich wie eukaryotische Lipid Rafts, bestehen FMMs aus polyisoprenoiden Lipiden, Scaffold-Proteinen und bestimmten Membranproteinen, die z.B. an Signalweiterleitung und Sekretion beteiligt sind. Die Untersuchung bakterieller FMMs trägt nicht nur dazu bei, die physiologische Relevanz der FMMs in Bakterien selbst zu verstehen, sondern auch um generelle Membranorganisationsprinzipien aufzuklären, die über Bakterien hinausgehen. In dieser Arbeit wurde daher ein bakterieller Modellorganismus benutzt, um Effekte von synthetischer Überproduktion von Raft-assoziierten Scaffold-Proteinen zu untersuchen. Diese Überexpression führt zu einer unüblichen Stabilisierung der Protease FtsH, die in den FMMs zu finden ist, was eine fehlerhafte Regulierung der Zielproteine von FtsH zur Folge hat. Demzufolge sind Entwicklungsdefekte und Anomalien in der Zellform die Konsequenzen, die im Umkehrschluss die Zellphysiologie negativ beeinträchtigen. Diese Ergebnisse können dazu dienen, Lipid-Raft Prozesse in Menschen besser zu verstehen, wo die Hochregulierung von Flotillin im Zusammenhang mit neurologischen Krankheiten steht. Darüber hinaus zielt diese Arbeit darauf ab, das FMM-Proteom des humanen Pathogenes Staphylococcus aureus besser zu verstehen. Eine detaillierte, quantitative Massenspektrometrieanalyse hat ergeben, dass das Proteincargo der FMMs sich zwar verschiedenen Bedingungen anpasst, aber auch ein bestimmtes Kernproteom in allen getesteten Bedingungen beibehält. Als Fallstudie wurde gezeigt, dass die Assemblierung des Typ VII Sekretionssystems von den FMMs, und im Detail von der Aktivität des Scaffoldproteins Flotillin, abhängig ist. Dieses Sekretionssystem ist wichtig für die Virulenzausbildung dieses Pathogenes und die Sekretionseffizienz kann durch kleine Moleküle verringert werden, die die Aktivität von Flotillin inhibieren. Diese Strategie eröffnet neue Möglichkeiten für die Anwendung unkonventioneller, antimikrobieller Substanzen, um Staphylokokken-Infektionen zu behandeln. KW - Staphylococcus aureus KW - Heubacillus KW - Membranlipide KW - Bacillus subtilis KW - lipid rafts Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-162037 ER - TY - JOUR A1 - Schneider, Johannes A1 - Klein, Teresa A1 - Mielich-Süss, Benjamin A1 - Koch, Gudrun A1 - Franke, Christian A1 - Kuipers, Oskar P. A1 - Kovács, Ákos T. A1 - Sauer, Markus A1 - Lopez, Daniel T1 - Spatio-temporal Remodeling of Functional Membrane Microdomains Organizes the Signaling Networks of a Bacterium JF - PLoS Genetics N2 - Lipid rafts are membrane microdomains specialized in the regulation of numerous cellular processes related to membrane organization, as diverse as signal transduction, protein sorting, membrane trafficking or pathogen invasion. It has been proposed that this functional diversity would require a heterogeneous population of raft domains with varying compositions. However, a mechanism for such diversification is not known. We recently discovered that bacterial membranes organize their signal transduction pathways in functional membrane microdomains (FMMs) that are structurally and functionally similar to the eukaryotic lipid rafts. In this report, we took advantage of the tractability of the prokaryotic model Bacillus subtilis to provide evidence for the coexistence of two distinct families of FMMs in bacterial membranes, displaying a distinctive distribution of proteins specialized in different biological processes. One family of microdomains harbors the scaffolding flotillin protein FloA that selectively tethers proteins specialized in regulating cell envelope turnover and primary metabolism. A second population of microdomains containing the two scaffolding flotillins, FloA and FloT, arises exclusively at later stages of cell growth and specializes in adaptation of cells to stationary phase. Importantly, the diversification of membrane microdomains does not occur arbitrarily. We discovered that bacterial cells control the spatio-temporal remodeling of microdomains by restricting the activation of FloT expression to stationary phase. This regulation ensures a sequential assembly of functionally specialized membrane microdomains to strategically organize signaling networks at the right time during the lifespan of a bacterium. KW - membrane proteins KW - gene expression KW - bacillus subtilis KW - fluorescence microscopy KW - cell fusion KW - signal transduction KW - gene regulation KW - lipids Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-125577 VL - 11 IS - 4 ER - TY - JOUR A1 - Mielich-Süss, Benjamin A1 - Schneider, Johannes A1 - Lopez, Daniel T1 - Overproduction of Flotillin Influences Cell Differentiation and Shape in Bacillus subtilis JF - mBio N2 - ABSTRACT Bacteria organize many membrane-related signaling processes in functional microdomains that are structurally and functionally similar to the lipid rafts of eukaryotic cells. An important structural component of these microdomains is the protein flotillin, which seems to act as a chaperone in recruiting other proteins to lipid rafts to facilitate their interaction. In eukaryotic cells, the occurrence of severe diseases is often observed in combination with an overproduction of flotillin, but a functional link between these two phenomena is yet to be demonstrated. In this work, we used the bacterial model Bacillus subtilis as a tractable system to study the physiological alterations that occur in cells that overproduce flotillin. We discovered that an excess of flotillin altered specific signal transduction pathways that are associated with the membrane microdomains of bacteria. As a consequence of this, we detected significant defects in cell division and cell differentiation. These physiological alterations were in part caused by an unusual stabilization of the raft-associated protease FtsH. This report opens the possibility of using bacteria as a working model to better understand fundamental questions related to the functionality of lipid rafts. IMPORTANCE The identification of signaling platforms in the membrane of bacteria that are functionally and structurally equivalent to eukaryotic lipid rafts reveals a level of sophistication in signal transduction and membrane organization unexpected in bacteria. It opens new and promising venues to address intricate questions related to the functionality of lipid rafts by using bacteria as a more tractable system. This is the first report that uses bacteria as a working model to investigate a fundamental question that was previously raised while studying the role of eukaryotic lipid rafts. It also provides evidence of the critical role of these signaling platforms in orchestrating diverse physiological processes in prokaryotic cells. KW - bacillus subtilis Y1 - 2013 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-129653 VL - 4 IS - 6 ER - TY - JOUR A1 - Lopez, Daniel A1 - Mielich-Süss, Benjamin A1 - Schneider, Johannes T1 - Overproduction of Flotillin Influences Cell Differentiation and Shape in Bacillus subtilis N2 - Bacteria organize many membrane-related signaling processes in functional microdomains that are structurally and functionally similar to the lipid rafts of eukaryotic cells. An important structural component of these microdomains is the protein flotillin, which seems to act as a chaperone in recruiting other proteins to lipid rafts to facilitate their interaction. In eukaryotic cells, the occurrence of severe diseases is often observed in combination with an overproduction of flotillin, but a functional link between these two phenomena is yet to be demonstrated. In this work, we used the bacterial model Bacillus subtilis as a tractable system to study the physiological alterations that occur in cells that overproduce flotillin. We discovered that an excess of flotillin altered specific signal transduction pathways that are associated with the membrane microdomains of bacteria. As a consequence of this, we detected significant defects in cell division and cell differentiation. These physiological alterations were in part caused by an unusual stabilization of the raft-associated protease FtsH. This report opens the possibility of using bacteria as a working model to better understand fundamental questions related to the functionality of lipid rafts. IMPORTANCE The identification of signaling platforms in the membrane of bacteria that are functionally and structurally equivalent to eukaryotic lipid rafts reveals a level of sophistication in signal transduction and membrane organization unexpected in bacteria. It opens new and promising venues to address intricate questions related to the functionality of lipid rafts by using bacteria as a more tractable system. This is the first report that uses bacteria as a working model to investigate a fundamental question that was previously raised while studying the role of eukaryotic lipid rafts. It also provides evidence of the critical role of these signaling platforms in orchestrating diverse physiological processes in prokaryotic cells. KW - Heubacillus KW - Zelldifferenzierung KW - Faktor Y1 - 2013 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-111369 ER - TY - JOUR A1 - Mielich-Süss, Benjamin A1 - Wagner, Rabea M. A1 - Mietrach, Nicole A1 - Hertlein, Tobias A1 - Marincola, Gabriella A1 - Ohlsen, Knut A1 - Geibel, Sebastian A1 - Lopez, Daniel T1 - Flotillin scaffold activity contributes to type VII secretion system assembly in Staphylococcus aureus JF - PLoS Pathogens N2 - Scaffold proteins are ubiquitous chaperones that promote efficient interactions between partners of multi-enzymatic protein complexes; although they are well studied in eukaryotes, their role in prokaryotic systems is poorly understood. Bacterial membranes have functional membrane microdomains (FMM), a structure homologous to eukaryotic lipid rafts. Similar to their eukaryotic counterparts, bacterial FMM harbor a scaffold protein termed flotillin that is thought to promote interactions between proteins spatially confined to the FMM. Here we used biochemical approaches to define the scaffold activity of the flotillin homolog FloA of the human pathogen Staphylococcus aureus, using assembly of interacting protein partners of the type VII secretion system (T7SS) as a case study. Staphylococcus aureus cells that lacked FloA showed reduced T7SS function, and thus reduced secretion of T7SS-related effectors, probably due to the supporting scaffold activity of flotillin. We found that the presence of flotillin mediates intermolecular interactions of T7SS proteins. We tested several small molecules that interfere with flotillin scaffold activity, which perturbed T7SS activity in vitro and in vivo. Our results suggest that flotillin assists in the assembly of S. aureus membrane components that participate in infection and influences the infective potential of this pathogen. KW - flotillin KW - scaffold protein KW - Staphylococcus aureus KW - type VII secretion system Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-170035 VL - 13 IS - 11 ER -